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Updated: Jun 20, 2026

Monitoring Cell-to-cell Transmission of Prion-like Protein Aggregates in Drosophila Melanogaster
Published on: March 12, 2018
Prion protein with an insertional mutation accumulates on axonal and dendritic plasmalemma and is associated with
Martin Jeffrey1, Caroline Goodsir, Gillian McGovern
1Veterinary Laboratories Agency, Lasswade Laboratory, Pentlands Science Park, Bush Loan, Penicuik, Midlothian, Scotland. m.jeffrey@vla.defra.gsi.gov.uk
Abstract:
Prion diseases are fatal neurological diseases characterized by central nervous system deposition of abnormal forms of a membrane glycoprotein designated PrP (prion protein). Tg(PG14) transgenic mice express PrP that harbor a nine-octapeptide insertional mutation homologous to one described in a familial prion disease of humans. Tg(PG14) mice spontaneously develop a fatal neurological illness accompanied by massive apoptosis of cerebellar granule neurons and accumulation of an aggregated and weakly protease-resistant form of PrP that is not infectious. Previous light microscopic analyses of these mice left open questions regarding the subcellular distribution of the mutant protein and the nature of the neuropathological lesions produced. To address these questions, we undertook an immunogold electron microscopic study of Tg(PG14) mice. We found that mutant PrP is localized primarily on the plasma membrane of dendrites and unmyelinated axons in the hippocampus and cerebellum, with little labeling of either neuronal cell bodies or intracellular organelles. PrP deposits were shown to be associated with degenerative changes in dendritic structure. We also describe for the first time marked pathology in myelinated axons, and alterations in the axon/oligodendrocyte interface. Taken together, our results suggest cellular mechanisms by which mutant PrPs produce pathology. In addition, they highlight distinctions between familial and infectious prion disorders at the ultrastructural level that correlate with differences in cellular trafficking of the disease-associated PrP forms.
Insights
Familial prion disease in Tg(PG14) mice involves mutant prion protein (PrP) accumulating on neuronal membranes, causing dendritic damage and axonal pathology. This ultrastructural study reveals key differences from infectious prion disorders.
Area of Science:
- Neuroscience
- Molecular Biology
- Pathology
Background:
- Prion diseases are fatal neurodegenerative disorders linked to abnormal prion protein (PrP) accumulation in the central nervous system.
- Familial prion diseases are associated with specific mutations in the PrP gene, such as the nine-octapeptide insertional mutation studied here.
Purpose of the Study:
- To investigate the subcellular localization and ultrastructural pathology of mutant PrP in Tg(PG14) transgenic mice.
- To elucidate cellular mechanisms underlying neurodegeneration in a familial prion disease model.
Main Methods:
- Immunogold electron microscopy was employed to examine PrP distribution in Tg(PG14) mouse brain.
- Ultrastructural analysis focused on neuronal and axonal pathology, including the axon-oligodendrocyte interface.
Main Results:
- Mutant PrP predominantly localized to the plasma membrane of dendrites and unmyelinated axons in the hippocampus and cerebellum.
- PrP deposits correlated with degenerative changes in dendritic structures and novel pathology in myelinated axons and the axon-oligodendrocyte interface.
- The observed PrP accumulation was not associated with infectious prion particles.
Conclusions:
- Mutant PrP's plasma membrane localization and association with axonal pathology suggest specific cellular mechanisms driving neurodegeneration in familial prion diseases.
- Ultrastructural findings highlight key differences between familial and infectious prion disorders, linked to distinct cellular trafficking of abnormal PrP forms.
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